Mathematical Modelling and Kinetic Analysis of Glycerol Carbonate Synthesis Using BaCaO Mixed Oxide Catalysts
Keywords:
Kinetic modelling; Reaction engineering; Heterogeneous catalysis; Transesterification kinetics; Glycerol carbonate.Abstract
The rapid expansion of the biodiesel industry has resulted in the large-scale generation
of crude glycerol, necessitating its efficient catalytic valorisation into value-added
chemicals such as glycerol carbonate (GC). Among the available conversion pathways,
the transesterification of glycerol with dimethyl carbonate (DMC) over heterogeneous
catalysts offers a sustainable and environmentally benign route; however, the reaction
kinetics and catalyst deactivation mechanisms of low-cost mixed-oxide catalysts remain
inadequately understood. This study presents a comprehensive chemico-mathematical
investigation of GC synthesis using a synthesized Barium–Calcium mixed oxide (BaCaO,
1:2:1) catalyst. Experimental kinetic data were obtained under varying reaction
temperatures (55–75 °C), catalyst loadings (1–5 wt%), and DMC-to-glycerol molar
ratios. A reduced Langmuir–Hinshelwood–Hougen–Watson (LHHW) kinetic model was
formulated and fitted to concentration–time profiles through nonlinear regression
analysis. The developed model exhibited excellent predictive capability with a
coefficient of determination (R²) of 0.987 and a root mean square error (RMSE) of
0.011, while Akaike Information Criterion (AIC) analysis statistically confirmed it as
the most appropriate reaction mechanism. The apparent activation energy (Eₐ) was
determined to be 58.4 kJ mol⁻¹, indicating that glycerol carbonate formation proceeds
predominantly under an intrinsic surface-reaction-controlled regime. Furthermore, a
novel first-order catalyst deactivation model was developed to quantitatively describe
catalyst performance decay, accurately correlating the reduction in GC yield from
88.0% to 60.0% after three reuse cycles with the experimentally measured leaching of
active Ca²⁺ species from 22.54 wt% to 1.94 wt%. The integrated kinetic and
deactivation framework provides a robust predictive platform for reactor optimisation,
catalyst regeneration scheduling, and industrial-scale implementation of sustainable
glycerol valorisation technologies.
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